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蓝藻有害藻华的微生物多样性、基因组学和噬菌体-宿主相互作用。

Microbial diversity, genomics, and phage-host interactions of cyanobacterial harmful algal blooms.

机构信息

Department of Biological Sciences, Guy Harvey Oceanographic Center, Nova Southeastern University, Dania Beach, Florida, USA.

U.S. Geological Survey, Caribbean-Florida Water Science Center, Orlando, Florida, USA.

出版信息

mSystems. 2024 Jul 23;9(7):e0070923. doi: 10.1128/msystems.00709-23. Epub 2024 Jun 10.

Abstract

UNLABELLED

The occurrence of cyanobacterial harmful algal blooms (cyanoHABs) is related to their physical and chemical environment. However, less is known about their associated microbial interactions and processes. In this study, cyanoHABs were analyzed as a microbial ecosystem, using 1 year of 16S rRNA sequencing and 70 metagenomes collected during the bloom season from Lake Okeechobee (Florida, USA). Biogeographical patterns observed in microbial community composition and function reflected ecological zones distinct in their physical and chemical parameters that resulted in bloom "hotspots" near major lake inflows. Changes in relative abundances of taxa within multiple phyla followed increasing bloom severity. Functional pathways that correlated with increasing bloom severity encoded organic nitrogen and phosphorus utilization, storage of nutrients, exchange of genetic material, phage defense, and protection against oxidative stress, suggesting that microbial interactions may promote cyanoHAB resilience. Cyanobacterial communities were highly diverse, with picocyanobacteria ubiquitous and oftentimes most abundant, especially in the absence of blooms. The identification of novel bloom-forming cyanobacteria and genomic comparisons indicated a functionally diverse cyanobacterial community with differences in its capability to store nitrogen using cyanophycin and to defend against phage using CRISPR and restriction-modification systems. Considering blooms in the context of a microbial ecosystem and their interactions in nature, physiologies and interactions supporting the proliferation and stability of cyanoHABs are proposed, including a role for phage infection of picocyanobacteria. This study displayed the power of "-omics" to reveal important biological processes that could support the effective management and prediction of cyanoHABs.

IMPORTANCE

Cyanobacterial harmful algal blooms pose a significant threat to aquatic ecosystems and human health. Although physical and chemical conditions in aquatic systems that facilitate bloom development are well studied, there are fundamental gaps in the biological understanding of the microbial ecosystem that makes a cyanobacterial bloom. High-throughput sequencing was used to determine the drivers of cyanobacteria blooms in nature. Multiple functions and interactions important to consider in cyanobacterial bloom ecology were identified. The microbial biodiversity of blooms revealed microbial functions, genomic characteristics, and interactions between cyanobacterial populations that could be involved in bloom stability and more coherently define cyanobacteria blooms. Our results highlight the importance of considering cyanobacterial blooms as a microbial ecosystem to predict, prevent, and mitigate them.

摘要

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蓝藻有害藻华(cyanoHABs)的发生与其理化环境有关。然而,人们对其相关的微生物相互作用和过程知之甚少。在这项研究中,我们将 cyanoHABs 分析为一个微生物生态系统,使用了 1 年的 16S rRNA 测序和 70 个宏基因组,这些宏基因组是在佛罗里达州奥基乔比湖(Lake Okeechobee)的藻华季节收集的。微生物群落组成和功能的生物地理模式反映了其理化参数明显不同的生态区,导致主要湖泊入流附近出现藻华“热点”。多个门内类群的相对丰度变化与藻华严重程度的增加相一致。与藻华严重程度增加相关的功能途径编码有机氮和磷的利用、营养物质的储存、遗传物质的交换、噬菌体防御以及对氧化应激的保护,这表明微生物相互作用可能促进 cyanoHAB 的恢复力。蓝藻群落高度多样化,微囊藻无处不在且通常最丰富,尤其是在没有藻华的情况下。新型形成藻华的蓝藻的鉴定和基因组比较表明,蓝藻群落具有多样化的功能,其利用藻青素储存氮的能力以及利用 CRISPR 和限制修饰系统防御噬菌体的能力存在差异。从微生物生态系统的角度考虑藻华及其在自然界中的相互作用,提出了支持 cyanoHAB 增殖和稳定的生理和相互作用,包括噬菌体感染微囊藻的作用。这项研究展示了“组学”揭示支持有效管理和预测 cyanoHAB 的重要生物学过程的能力。

重要性

蓝藻有害藻华对水生生态系统和人类健康构成重大威胁。尽管促进水华发展的水生系统的物理和化学条件得到了很好的研究,但在蓝藻水华的微生物生态系统的生物学理解方面仍存在根本差距。高通量测序用于确定自然中蓝藻水华的驱动因素。确定了对蓝藻水华生态学重要的多种功能和相互作用。水华的微生物多样性揭示了可能参与水华稳定的微生物功能、基因组特征和蓝藻种群之间的相互作用,并更一致地定义了蓝藻水华。我们的研究结果强调了将蓝藻水华视为一个微生物生态系统来预测、预防和减轻它们的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31eb/11265339/2eb3a33ce26f/msystems.00709-23.f001.jpg

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